If in the given figure- nbsp-ABCD is a rectangle and DCE is an equilateral triangle- nbsp-then nbsp-which of the following statements is-are correct- - DAE - CBE- DAE-15- nbsp-AEB nbsp- is isosceles- nbsp-DAE is isosceles-

The correct options are A Δ DAE ≅ Δ CBE C Δ nbsp;AEB nbsp; is isosceles.∠ EDC = ∠ ECD (Angles of an equilateral triangle) And nbsp;∠ ADC = ∠ BCD (Angles ...

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Byju's Answer

Standard VIII

Mathematics

Deducing Properties of Equilateral Triangles

If in the giv...

Question

If in the given figure, ABCD is a rectangle and DCE is an equilateral triangle, then which of the following statements is/are correct?

Δ D A E ≅ Δ C B E

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∠ D A E = 15^{\circ}

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Δ A E B

is isosceles.

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Δ D A E

is isosceles.

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Solution

The correct options are
A $Δ D A E ≅ Δ C B E$
C $Δ A E B$ is isosceles.
$∠ E D C$ = $∠ E C D$ (Angles of an equilateral triangle)
And $∠ A D C$ = $∠ B C D$ (Angles of a rectangle)
$∴ ∠ E D C + ∠ A D C = ∠ E C D + ∠ B C D$
$\Rightarrow ∠ E D A = ∠ E C B$
In $Δ D A E$ and $Δ C B E$ ,
$D E = C E$ (Sides of an equilateral triangle)
$D A = B C$ (Sides of a rectangle)
$∠ E D A$ = $∠ E C B$ (proved)
Hence, $Δ D A E ≅ Δ C B E$ (SAS congruence)
Also, EA = EB (C.P.C.T.C.)
$\Rightarrow Δ E A B$ is an isosceles triangle.
It is given that, ABCD is a rectangle.
$\Rightarrow D A \neq D C$
Also, DEC is an equilateral triangle.
$\Rightarrow D C = D E$
$∴ D A \neq D E$
Hence, DAE is not an isosceles triangle.
Also, it can not be proved that $∠ D A E = 15^{\circ}$ .

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